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Motion estimation of magnetic resonance cardiac images using the Wigner-Ville and Hough Transforms

机译:使用Wigner-Ville和Hough变换的磁共振心脏图像运动估计

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Myocardial motion analysis and quantification is of utmost importance for analyzing contractile heart abnormalities and it can be a symptom of a coronary artery disease. A fundamental problem in processing sequences of images is the computation of the optical flow, which is an approximation of the real image motion. This paper presents a new algorithm for optical flow estimation based on a spatiotemporal-frequency (STF) approach. More specifically it relies on the computation of the Wigner-Ville distribution (WVD) and the Hough Transform (HT) of the motion sequences. The latter is a well-known line and shape detection method that is highly robust against incomplete data and noise. The rationale of using the HT in this context is that it provides a value of the displacement field from the STF representation. In addition, a probabilistic approach based on Gaussian mixtures has been implemented in order to improve the accuracy of the motion detection. Experimental results in the case of synthetic sequences are compared with an implementation of the variational technique for local and global motion estimation, where it is shown that the results are accurate and robust to noise degradations. Results obtained with real cardiac magnetic resonance images are presented.
机译:心肌运动分析和定量对于分析收缩性心脏异常至关重要,并且可能是冠状动脉疾病的症状。处理图像序列中的一个基本问题是光流的计算,这是真实图像运动的近似值。本文提出了一种基于时空频率(STF)方法的光流估计新算法。更具体地,其依赖于运动序列的维格纳-维尔分布(WVD)和霍夫变换(HT)的计算。后者是一种众所周知的线条和形状检测方法,对不完整的数据和噪声具有很高的鲁棒性。在这种情况下使用HT的基本原理是,它提供了来自STF表示的位移场的值。另外,已经实现了基于高斯混合的概率方法,以提高运动检测的准确性。将合成序列情况下的实验结果与用于局​​部和全局运动估计的变分技术的实现方式进行了比较,结果表明该结果准确且对噪声降级具有鲁棒性。呈现了用真实的心脏磁共振图像获得的结果。

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